Dataset

CA-9_RR_training




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Name CA-9_RR_training
Extended ID CA-9_RR_training__Hedman-Rothe-Johansson-Sandin-Larsson-Miyamoto__DS_tag5zubl21w8_0
Description Random-random configurations from CA-9 dataset used for training NNP_RR potential. CA-9 consists of configurations of carbon with curated subsets chosen to test the effects of intentionally choosing dissimilar configurations when training neural network potentials
Authors Daniel Hedman
Tom Rothe
Gustav Johansson
Fredrik Sandin
J. Andreas Larsson
Yoshiyuki Miyamoto
DOI 10.60732/4096ff5c
https://commons.datacite.org/doi.org/10.60732/4096ff5c
https://doi.datacite.org/dois/10.60732%2F4096ff5c
https://doi.org/10.60732/4096ff5c

Cite as: Hedman, D., Rothe, T., Johansson, G., Sandin, F., Larsson, J. A., and Miyamoto, Y. "CA-9 RR training." ColabFit, 2023. https://doi.org/10.60732/4096ff5c.
For other citation formats, see the DataCite Fabrica page for this dataset.
Calculated Property Types atomic_forces
cauchy_stress
energy
Elements
C (100.0%)
Number of Configurations 20,012
Number of Atoms 1,099,992
Publication Link https://doi.org/10.1016/j.cartre.2021.100027
Data Source Link https://doi.org/10.24435/materialscloud:6h-yj
Configuration Sets by Name
Configuration Sets by ID
ColabFit ID DS_tag5zubl21w8_0
Downloads 7
Files colabfitspec.json

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